Deconfining Phase Boundary of Rapidly Rotating Hot and Dense Matter and Analysis of Moment of Inertia
arXiv:2101.09173 · doi:10.1016/j.physletb.2021.136184
Abstract
We discuss the effect of rapid rotation on the phase diagram of hadronic matter. The energy dispersion relation is shifted by an effective chemical potential induced by rotation. This suggests that rotation should lower the critical temperature of chiral restoration, but it is still controversial how the deconfinement temperature should change as a function of angular velocity. We adopt the hadron resonance gas model as an approach free from fitting parameters. We identify the deconfinement from the thermodynamic behavior and find that rotation decreases the deconfinement temperature. We also discuss the spatial inhomogeneity of the pressure and give a semi-quantitative estimate of the moment of inertia.
7 pages, 3 figures
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Cited by in corpus (6)
- Inhomogeneous confining-deconfining phases in rotating plasmas
- Phase diagram of holographic thermal dense QCD matter with rotation
- Deconfinement transition in the revolving bag model
- Instantons in rotating finite-temperature Yang-Mills gas
- Global polarization and spin alignment measurements
- Confinement/Deconfinement temperature for a rotating quark-gluon plasma